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Interaction of Dust-Acoustic Shock Waves in a Magnetized Dusty Plasma under the Influence of Polarization Force

Published online by Cambridge University Press:  01 January 2024

N. S. Saini*
Affiliation:
Department of Physics, Guru Nanak Dev University, Amritsar 143005, India
Kuldeep Singh
Affiliation:
Department of Physics, Guru Nanak Dev University, Amritsar 143005, India
Papihra Sethi
Affiliation:
Department of Physics, Guru Nanak Dev University, Amritsar 143005, India
*
Correspondence should be addressed to N. S. Saini; nssaini@yahoo.com

Abstract

The interaction of dust-acoustic (DA) shock waves in a magnetized dusty plasma under the influence of nonextensively modified polarization force is investigated. The plasma model consists of negatively charged dust, Maxwellian electrons, nonextensive ions, and polarization force. In this investigation, we have derived the expression of polarization force in the presence of nonextensive ions and illustrated the head-on collision between two DA shock waves. The extended Poincaré–Lighthill–Kuo (PLK) method is employed to obtain the two-sided Korteweg–de Vries–Burgers (KdVB) equations and phase shifts of two shock waves. The trajectories and phase shifts of negative potential dust-acoustic shock waves after collision are examined. The combined effects of various physical parameters such as polarization force, nonextensivity of ions, viscosity of dust, and magnetic field strength on the phase shifts of DA shock waves have been studied. The present investigation might be useful to study the process of collision of nonlinear structures in space dusty plasma such as planetary rings where non-Maxwellian particles such as nonextensive ions, negatively charged dust, and electrons are present.

Information

Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright
Copyright © 2021 N. S. Saini et al.
Figure 0

Figure 1: The variation of polarization force parameter (R) with nonextensivity of ions (via q).

Figure 1

Figure 2: The variation of rarefactive DA shocks profile with respect to ξ (a) for different values of polarization parameter (R) and nonextensivity parameter (q) and (b) for different values of viscosity ηl0 and magnetic field strength whereas other parameters ρ = 1.3, lz = 0.8, σ = 0.25, Ω = 0.8, and ηl = 0.35 are fixed.

Figure 2

Figure 3: The collision of two DA shock waves at different time intervals for q = 0.33, R = 0.1, ρ = 1.3, lz = 0.8, σ = 0.25, Ω = 0.8, and ηl=0.2. (a) τ = 50, (b) τ = 40, (c) τ = 30, (d) τ = 20, (e) τ = 0, (f) τ = −50, (g) τ = −40, (h) τ = −30, and (i) τ = −20.

Figure 3

Figure 4: Collision process of two DA shock waves for (a) ηl0=0.1 and (b) ηl0=0.2 and ρ = 1.3, lz = 0.8, σ = 0.25, Ω = 0.8, R = 0.11, and q = 0.33 are fixed.

Figure 4

Figure 5: Collision process of two DA shock waves for (a) Ω = 0.2 and (b) Ω = 0.3 and ρ = 1.3, lz = 0.8, σ = 0.25, R = 0.11, ηl=0.2, and q = 0.3 are fixed.

Figure 5

Figure 6: The variation of phase shift of two DA shock waves vs. q for different values of R (a) with magnetic field and (b) without magnetic field and ρ = 1.3, lz = 0.8, σ = 0.25, and ηl=0.2 are fixed.

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